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DECK: Discovering Event Composition Knowledge from Web Images for Zero-Shot Event Detection and Recounting in Videos

机译:DECK:从Web Images发现活动组合知识以获取零射击事件检测并在视频中叙述

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We address the problem of zero-shot event recognition in consumer videos. An event usually consists of multiple human-human and human-object interactions over a relative long period of time. A common approach proceeds by representing videos with banks of object and action concepts, but requires additional user inputs to specify the desired concepts per event. In this paper, we provide a fully automatic algorithm to select representative and reliable concepts for event queries. This is achieved by discovering event composition knowledge (DECK) from web images. To evaluate our proposed method, we use the standard zero-shot event detection protocol (ZeroMED), but also introduce a novel zero-shot event recounting (ZeroMER) problem to select supporting evidence of the events. Our ZeroMER formulation aims to select video snippets that are relevant and diverse. Evaluation on the challenging TRECVID MED dataset show that our proposed method achieves promising results on both tasks.
机译:我们解决了消费者视频中零射击事件识别问题。事件通常由多个人类和人对象的相互作用组成,而相对长的时间。通过代表具有对象和动作概念的银行的视频来进行共同的方法,但需要其他用户输入来指定每个事件的所需概念。在本文中,我们提供了一个全自动算法,可为事件查询选择代表性和可靠的概念。这是通过从Web图像发现事件组合知识(甲板)来实现的。为了评估我们提出的方法,我们使用标准的零射击事件检测协议(Zeromed),但还引入了一种新颖的零射击事件叙述(Zeromer)问题,以选择支持事件的证据。我们的Zeromer配方旨在选择相关和多样化的视频片段。挑战性的TRECVID MED数据集的评估表明,我们的建议方法达到了两个任务的有希望的结果。

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